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R Pathansali

Publications and source records attributed to R Pathansali.

6 recordsLinked to original sources

Prothrombotic megakaryocyte and platelet changes in hypertension are reversed following treatment: a pilot study.

Platelets are formed from, and their function determined by, bone marrow megakaryocytes (MK). Previous studies have found that hypertension is associated with accentuated platelet function and that some antihypertensive drug classes have antiplatelet activity. We measured MK ploidy (DNA content), size, granularity, and expression of the adhesion molecule glycoprotein (GP) IIIa, using flow cytometry and measures of platelet function, in 12 untreated hypertensive patients and 14 normotensive subjects. Eight hypertensive patients were then treated with losartan (50 mg daily), an angiotensin receptor antagonist that lowers blood pressure, and MK and platelet parameters re-measured after 6 weeks. Hypertensive patients had, as compared with matched normotensive subjects: increased MK ploidy (mean +/- SD) 22.9 +/- 2.2 N versus 20.8 +/- 1.6 N (2P = 0.009); increased platelet size, 10.67 +/- 1.03fl versus 9.26 +/- 0.72fl (2P < 0.001); increased platelet expression of GP IIIa, 108.6 +/- 22.5 versus 92.0 +/- 12.3 (2P = 0.036); and reduced platelet count, (207 +/- 52) x 10(9)/l versus (257 +/- 55) x 10(9)/l (2P = 0.026). Losartan significantly reduced MK ploidy, 22.6 +/- 2.2 N versus 21.4 +/- 1.9 N (2P = 0.006); MK size, 607 +/- 22 versus 579 +/- 16 (2P = 0.003); and lengthened cutaneous bleeding time, 424 +/- 86s versus 563 +/- 164s (2P = 0.011), in hypertensive patients. Losartan did not alter MK granularity or GP IIIa expression, or platelet count, size, mass, GP IIIa expression, or aggregation. The data suggest that platelet changes in hypertension may be secondary to changes in MKs, and that anti-hypertensive treatment can alter MKs and the function of platelets they produce. Since antihypertensive therapy reduces the risk of stroke and myocardial infarction, MKs are a novel therapeutic target for the prevention of vascular events.

Adult↗

Altered megakaryocyte-platelet haemostatic axis in hypercholesterolaemia.

Hypercholesterolaemia is associated with accentuated platelet function. We assessed in a pilot study whether megakaryocytes (MK), the platelet precursor cell, were altered in subjects with primary hypercholesterolaemia and whether these changes were linked with platelet function. MK and platelet function were assessed in eight untreated patients with primary hypercholesterolaemia (total cholesterol, TC > 7 mmol/l), and 14 control subjects (TC < or = 7 mmol/l): MK ploidy (DNA content), size, granularity, and expression of the adhesion molecule GP IIIa, and platelet expression of GP IIIa, P selectin and CD 63, and RNA content, were each measured using flow cytometry; mean platelet volume, platelet count, plasma thrombopoietin, and cutaneous bleeding time were also assessed. Hypercholesterolaemic patients had increased MK ploidy, mean (SD) 22.9 N (2.3) vs. 20.8 N (1.6) (2P=0.021); platelet size, 10.6 fl (1.2) vs. 9.3 fl (0.7) (2P=0.006); and platelet expression of GP IIIa, 111.3 (18.9) vs. 92.0 (12.3) (2P=0.010), as compared with matched control subjects. Cutaneous bleeding time tended to be reduced in the hypercholesterolaemic patients, 364 s (136) vs. 483 s (165) (2P=0.11). No differences in MK size, granularity or GP IIIa expression, or platelet count, mass, RNA content, P selectin or CD 63 expression, or plasma thrombopoietin were seen. The data suggest that aspects of megakaryocytes and platelets are altered in hypercholesterolaemia, as has also been seen in other vascular risk factors states, including hypertension and diabetes mellitus. Furthermore, changes in megakaryocytes may have contributed to the altered platelet function seen here. Further study is now required to assess whether lipid lowering therapy "normalises" these changes in the megakaryocyte-platelet haemostatic axis.

Adult↗

The effect of transdermal glyceryl trinitrate, a nitric oxide donor, on blood pressure and platelet function in acute stroke.

BACKGROUND AND PURPOSE: Hypertension is a common medical complication in acute stroke and is associated with a poor outcome. However, no large trials have assessed the effect of lowering blood pressure (BP) on outcome, and it remains unclear how BP should be managed in acute stroke. We assessed, in a double-blind randomised controlled trial, whether the nitric oxide (NO) donor glyceryl trinitrate (GTN, a known systemic and cerebral vasodilator), would lower BP and alter platelet function. METHODS: Thirty-seven patients with recent (< 5 days) ischaemic or haemorrhagic stroke were randomised by minimisation to 12 days of daily treatment with transdermal GTN or matching placebo patches. Twenty-four-hour ambulatory BP was measured before and during GTN treatment at days 0, 1 and 8. Platelet aggregation and expression of adhesion molecules were assessed at the same time points. Functional outcome (Rankin scale) and case fatality were assessed at 3 months. Analysis was by intention-to-treat. RESULTS: GTN significantly lowered BP by 13.0/5.2 mm Hg at day 1 and 9.3/5.0 mm Hg at day 8. The lesser reduction at day 8 than day 1 suggests that tolerance to GTN was developing. Non-significant falls of 0.9/0.6 and 3.8/0.0 mm Hg occurred at days 1 and 8, respectively, in the placebo group. GTN had no effect on heart rate, or platelet aggregation or expression of platelet adhesion molecules, including glycoproteins Ia, Ib, IIIa and P-selectin. Additionally, GTN did not alter case fatality or dependency, although the study was not powered for these outcomes. CONCLUSIONS: Transdermal GTN, an NO donor, lowered BP by 5-8%, a clinically significant and relevant, but not excessive, degree in patients with acute stroke. However, GTN had no effect on platelet aggregation or expression of adhesion molecules. Since NO donors increase cerebral blood flow in patients with acute ischaemic stroke, GTN may be an appropriate drug for testing the effect of lowering BP on functional outcome.

Administration, Cutaneous↗

Platelets and stroke.

Platelets are anucleate cells with little or no capacity for de novo protein synthesis. Their potential haemostatic reactivity is established at or before thrombopoiesis by their precursor cell, the bone marrow megakaryocyte. In some pathologic conditions, the megakaryocyte-platelet-haemostatic axis (MPHA) becomes perturbed, resulting in the formation of hyperfunctional platelets which may contribute to the development of vascular disease or an acute thrombotic event such as ischaemic stroke or myocardial infarction. Laboratory measurements of platelet function have established that platelet reactivity is accentuated in acute ischaemic stroke, particularly following cortical rather than lacunar infarction. Whether accentuated platelet function is a cause or a consequence of stroke is not yet clear, but it is likely that patients with certain risk factor profiles have some degree of platelet activation preceding the stroke. Further work into the MPHA is required to establish whether enhanced post-stroke platelet reactivity can be referred to the megakaryocyte. The antiplatelet agents tested to date are effective in secondary but not primary prevention of stroke. This probably reflects the diverse pathophysiology of stroke: accentuated platelet function is only likely to be a significant factor in cortical stroke.

Animals↗